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Nano‐Dual‐Phase Metallic Glass Film Enhances Strength and Ductility of a Gradient Nanograined Magnesium Alloy

机译:纳米双相金属玻璃膜增强了梯度纳米镁合金的强度和延展性

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摘要

Magnesium (Mg) alloys are good candidates for applications with requirement of energy saving, taking advantage of their low density. However, the fewer slip systems of the hexagonal‐close‐packed (hcp) structure restrict ductility of Mg alloys. Here, a hybrid nanostructure concept is presented by combining nano‐dual‐phase metallic glass (NDP‐MG) and gradient nanograin structure in Mg alloys to achieve a higher yield strength (230 MPa, 31% improvement compared with the reference base alloy) and larger ductility (20%, threefold higher than the SMAT‐H sample), which breaks the strength–ductility trade‐off dilemma. This hybrid nanostructure is realized by surface mechanical attrition treatment (SMAT) on the surface of a crystalline Mg alloy, and followed by physical vapor deposition of a Mg‐based NDP‐MG. The higher strength is provided by the nanograin layer generated by SMAT. The larger ductility is a synergistic effect of multiple shear bandings and nanocrystallization of the NDP‐MG, inhibition of crack propagation from the SMATed nanograined structure by the NDP‐MG, and strain‐induced grain growth in the SMATed nanograin layer. This hybrid nanostructure design provides a general route to render brittle alloys stronger and ductile, especially in hcp systems.
机译:镁(Mg)合金是良好的候选候选者,用于节能的应用,利用它们的低密度。然而,六边形封装(HCP)结构的较少的滑动系统限制了Mg合金的延性。这里,通过将纳米双相金属玻璃(NDP-Mg)和梯度纳米结构在Mg合金中组合以实现更高的屈服强度(与参考基础合金相比,改善230MPa)和杂交纳米植物概念来提出杂交纳米结构概念。较大的延展性(20%,三倍高于Smat-H样本),断断了强度 - 延展性差异困境。该杂合纳米结构通过表面机械研磨处理(SMAT)在结晶Mg合金表面上实现,然后通过物理气相沉积Mg基NDP-Mg。较高的强度由Smat产生的纳米簇层提供。较大的延展性是NDP-Mg的多剪切绑定和纳米晶体的协同作用,通过NDP-Mg从X型纳米甲基结构中抑制裂纹繁殖,并在络合的纳米物层中的应变诱导的晶粒生长。该杂交纳米结构设计提供了一般的途径,以使脆性合金更强和延展性,特别是在HCP系统中。

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